School of Chemical and Biological Engineering, Seoul National University , 599 Gwanak-ro, Gwanak-gu, Seoul 151-742, Korea.
ACS Appl Mater Interfaces. 2018 Feb 21;10(7):6570-6579. doi: 10.1021/acsami.7b18895. Epub 2018 Feb 9.
Wrinkled silica nanoparticle (WSN)-based hollow SiO/TiO nanoparticles (W-HNPs) with hierarchically arrayed internal surfaces were prepared via the combination of sol-gel, TiO coating, and etching of core template techniques. The hierarchical internal surface of W-HNPs was attained using WSNs as a core template. Compared with SiO sphere-templated hollow SiO/TiO nanoparticles (S-HNPs) with flat inner surfaces, W-HNPs displayed distinctive surface areas, TiO loading amounts, and dielectric properties arising from the hierarchical internal surface. The unique properties of W-HNPs were further investigated as an electrorheological (ER) material. W-HNP-based ER fluids exhibited ca. 1.9-fold enhancement in the ER efficiency compared to that of S-HNP-based ER fluids. Such enhancement was attributed to the unique inner surface of W-HNPs, which effectively enhanced the polarizability by increasing the number of charge accumulation sites, and to the presence of the high-dielectric TiO. This study demonstrated the advantages, in terms of practical ER applications, of hollow nanomaterials having uniquely arrayed internal spaces.
基于褶皱二氧化硅纳米颗粒(WSN)的具有分级排列内部表面的中空 SiO/TiO 纳米颗粒(W-HNPs)是通过溶胶-凝胶、TiO 涂层和核模板技术的刻蚀相结合制备的。通过使用 WSN 作为核模板,获得了 W-HNPs 的分级内部表面。与具有平坦内表面的 SiO 球模板化中空 SiO/TiO 纳米颗粒(S-HNPs)相比,W-HNPs 由于具有分级内部表面而表现出独特的比表面积、TiO 负载量和介电性能。进一步将 W-HNPs 用作电流变(ER)材料来研究其独特性能。与基于 S-HNP 的 ER 流体相比,基于 W-HNP 的 ER 流体的 ER 效率提高了约 1.9 倍。这种增强归因于 W-HNPs 的独特内部表面,其通过增加电荷积累位点的数量来有效提高极化率,以及高介电常数 TiO 的存在。该研究表明,具有独特排列内部空间的中空纳米材料在实际 ER 应用中具有优势。